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Navigating Regulatory Challenges: Industry Leaders Discuss Shadow Fleet, Decarbonisation and Prospects of Energy Shipping at Posidonia 2024
Shipping elite debates age of transition at prestigious Tradewinds Shipowners Forum
By
Applied Technology Review | Wednesday, June 05, 2024
Shipping elite debates age of transition at prestigious Tradewinds Shipowners Forum
During a riveting opening panel session of the Tradewinds Shipowners Forum at Posidonia 2024, Harry Conway, Chair of the Marine Environment Protection Committee (MEPC) of the International Maritime Organisation (IMO), engaged in an in-depth discussion with senior representatives of the shipping industry on regulatory issues ranging from shadow fleets to alternative fuels.
“We should be concerned by dark fleet activity because of the safety of vessels and crew, as well as the protection of the marine environment. If elements within the industry circumvent the rules and regulations, we have a problem. Dark fleet vessels have no accountability because they operate under the radar; they don’t respect the rules, and the IMO is taking measures and actions to tackle the issue.”
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Michael Parker, Global Industry Head of Shipping & Logistics at Citi, agreed that the problem is profound. He said, “I am concerned, but we have to call it out; we are at war, and until the war is over and issues are resolved, it won’t be easy to find solutions. The IMO is powerless to enforce various things to improve transparency unless others are willing to take more impactful steps. Sanctions are not proving to be effective, but I am optimistic that we are in an age of regulation and transparency, and climate change and data are going to drive positive change. It’s really a question of enforcement. We hope peace will bring the restoration of more normal behaviour. We cannot allow the creation of shadow fleets to happen again.”
Christopher J. Wiernicki, Chairman and CEO of ABS, said that the industry is in the early innings of a decade of uncertainty. “A new age of safety, commercial compliance, and government accountabilities is here. This is a shared responsibility; the onus should not be just on the commercial side. The shadow fleet is a matter of concern. It has a different perspective compared to the rest of us; they have old vessels, poor inspections, lack insurance, and are riddled with mechanical failures and oil spills, which they simply regard as collateral damage. But as we move forward, environmental regulations are going to be global shipping shapers, so as we move forward, environmental regulations will be a big part of commercial decision-making."
Wiernicki added, “Our industry is divided into three types: the leaders who are taking decisions and placing bets today; then we have the fast followers, those doing some piloting and experimenting around fuels; and we have the very many who are actually doing nothing, waiting to see what will happen.”
In response to his remarks, Dr Conway said that there is indeed a greater sense of a common mission, even though there is still a polarisation between those who act and those who aren’t doing so much.
On the themes of decarbonisation and alternative fuels, the shipping industry seems to be in unison around the main challenges it is facing and the necessity of effective and impactful incentivisation policies for the energy transition in maritime to be successful.
“If the carbon cost is passed onto the supply chain and then to consumers, we are not making any progress toward shipping decarbonisation; instead, we should be using proceeds from the EU ETS to subsidise the industry in our quest to decarbonise. Other incentives could include the reduction of waiting times at ports for vessels that are more energy-efficient,” said Charis Plakantonaki, Chief Strategy Officer, Star Bulk Carriers Corp. “We need the IMO to provide more clarity on the measures they are planning and what the impact on our industry will be.”
Dr Conway concluded, “Clarity, pragmatism, uncertainty, shared responsibility – these are the key words of the industry, and these are the things we at the IMO strive to provide. The clarity the industry is craving is our priority as we study a lot of proposals on the table, each having its own implications for the transition, which is not going to be cheap. We have done comprehensive impact assessments, and come September, we will be able to make informed decisions as we try to provide the certainty the industry needs to make the right investment decisions.”
The scene for the decarbonisation discussion was set earlier in the opening session of the Tradewinds event by Clarkson Research Managing Director, Stephen Gordon, who highlighted that shipping is responsible for about 2% of global emissions, while it is also the most carbon-efficient mode of transportation. “Significant fleet renewal and alternative fuels are needed, but also retrofitting technology and slower speeds in a multi-layered approach.”
The conference also addressed the future of energy shipping, which globally accounts for 38 percent of shipping volumes, and in Greece is even higher, reaching almost 50 percent. As peak oil remains at least a decade away, with other estimates projecting it much further into the future, Evangelos Marinakis, Chairman & Founder of Capital Maritime & Trading Corp., who controls a fleet of more than ten million deadweight tons, is optimistic about the future of energy shipping. This optimism is fuelled by continuous global population growth and the ongoing modernization of the developing world. “We bet on what happened yesterday, what is happening today, and what is likely to happen tomorrow,” he said. “We see that the world’s population is increasing, and as countries develop, electricity needs rise, driving up demand. We also see that Artificial Intelligence (AI) demands increasingly more power, which will further contribute to the sustainable demand for oil and gas. Of course, geopolitical tensions and developments always play their part. With current events in the Red Sea and the potential for conflict between the USA and China, anything could happen.”
Regarding geopolitical factors, Paolo Enoizi, CEO of Hafnia, stated: “We believe that recent geopolitical events have clearly reset the perspective towards oil and gas. Many charterers and final users appreciate how quickly they can divert vessels to target different markets based on needs and opportunities. It’s all about how we create more value.”
Andrian Dacy, CEO & CIO of J.P. Morgan Asset Management’s Global Transportation Group, added: “There is a lot of connectivity between today and tomorrow. We can’t ignore today when planning for the future. It comes down to the current consumption of crude oil and gas and the likely reserves, which we believe will last for at least fifty more years, give or take. With renewables in the mix, it could probably be 60 years. The takeaway is that the advent of renewables is not happening quickly enough to account for the additional demand for power created by AI, which is going to be the biggest energy consumer.”
The European lubricant industry is transforming significantly, driven by increasing environmental concerns and stringent regulatory standards. This shift towards sustainability prompts innovative solutions that enhance performance and minimise the industry's ecological footprint.
Several critical factors drive sustainability in the European lubricants industry. Stringent environmental regulations, including the EU’s Eco-design Directive, set high standards for reducing the environmental impact of products, including lubricants. Consumer demand also plays a key role, as a growing segment seeks eco-friendly options, spurring demand for sustainable lubricant solutions. Additionally, lubricant manufacturers are increasingly integrating sustainability into their corporate strategies to improve brand reputation and attract environmentally conscious customers.
Innovative solutions are shaping the future of sustainable lubricants. Bio-based lubricants, derived from renewable sources like plants and animals, offer lower carbon footprints and biodegradability, making them a viable alternative to petroleum-based products. Synthetic oils, though not always bio-based, are engineered for superior performance, reducing friction, improving fuel efficiency, and extending equipment lifespan—all of which contribute to lower emissions and energy consumption. Advances in nanotechnology have also transformed the field, with nanoparticles enhancing lubrication and wear resistance, resulting in significant energy savings and environmental benefits. Recycling initiatives further support sustainability, as recycled base oils can be refined to produce high-quality lubricants that meet performance standards, thus conserving resources. Moreover, lubricant manufacturers are adopting eco-friendly packaging, such as recyclable or biodegradable materials, to reduce waste and lessen the environmental impact of their products.
Sustainable lubricants are gaining traction as environmentally friendly alternatives across various industries, with advancements spanning bio-based, synthetic, and nano-lubricant technologies. Bio-based hydraulic fluids, derived from renewable sources like rapeseed oil, provide superior biodegradability and significantly lower environmental impact than traditional petroleum-based fluids. Synthetic ester-based lubricants are designed to withstand extreme temperatures, improving energy efficiency and equipment lifespan, making them ideal for demanding applications in the aerospace and automotive sectors. Similarly, nano-lubricants—incorporating nanoparticles—reduce friction and enhance energy efficiency, particularly in automotive and industrial uses.
Digital technologies are instrumental in optimising lubricant application and sustainability. Digital twin technology allows the creation of virtual replicas of machinery, helping to refine lubricant usage and maintenance schedules, thereby minimising waste and downtime. Additionally, sensor-based monitoring enables real-time tracking of lubricant conditions for predictive maintenance, extending the life of equipment and reducing lubricant replacement frequency. With IoT-enabled lubrication systems, lubrication processes are automated, ensuring consistent application and minimising human error.
The regulatory landscape promotes sustainability through standards such as the EU Ecolabel, a certification recognising lubricants that meet rigorous environmental criteria, including reduced toxicity and enhanced biodegradability. The REACH regulation ensures the safe use of chemicals in lubricant formulations. It requires manufacturers to assess and mitigate environmental risks associated with their products, supporting a shift towards safer, more sustainable lubricants.
Through collaboration, lubricant manufacturers, suppliers, and consumers can propel the development of sustainable solutions that benefit both the environment and the economy. The future of lubricants in Europe is set on a sustainable trajectory. With technological advancements and increasing consumer awareness, the industry can anticipate a wave of innovative and eco-friendly solutions. The lubricant sector can significantly contribute to a cleaner, greener future by prioritising sustainability. ...Read more
The global transportation sector contributes to greenhouse gas emissions, responsible for approximately 25 percent of energy-related CO2 emissions worldwide. Consequently, decarbonizing transport has become a critical priority. Several solutions are emerging, including electric vehicles (EVs) and low-carbon fuels such as hydrogen, methanol, and ammonia. Advanced biofuels and e-fuels also offer promising opportunities to reduce the carbon footprint in transport sectors where electrification faces significant hurdles, particularly in aviation, shipping, and heavy-duty road transport.
A key advantage of sustainable hydrocarbon fuels is their drop-in capability, allowing them to be used in existing engines and infrastructure without substantial modifications. This feature is precious for sectors like aviation and shipping, where transitioning to alternative propulsion systems is complex, costly, and time-intensive.
First-generation biofuels, such as bioethanol and biodiesel from food crops like corn, sugarcane, and vegetable oils, have traditionally dominated the sustainable fuel market. However, concerns over their competition with food production, lifecycle emissions, and land use drive regions to pursue more advanced alternatives. Second-generation biofuels, which utilize lignocellulosic biomass, agricultural residues, and non-food crops, are gaining traction for their enhanced sustainability and minimal impact on food resources. Meanwhile, third and fourth-generation biofuels leverage microalgae and other microorganisms, holding future potential despite current production challenges.
E-fuels, also called power-to-liquid (PtL) fuels, represent another promising advancement in sustainable fuel technology. Created by combining green hydrogen (produced via water electrolysis using renewable energy) with captured CO₂, e-fuels could enable carbon-neutral energy solutions. Examples include e-methane, e-methanol, and liquid e-fuels like e-gasoline, e-diesel, and e-kerosene (e-SAF for aviation). While market activity remains robust for second-generation biofuels, e-fuels are quickly gaining momentum due to their theoretically unlimited feedstock sources, potential for carbon neutrality, and support from regulatory bodies and major corporations.
Renewable diesel, or hydrotreated vegetable oil (HVO) or green diesel, is a direct alternative to conventional fossil diesel. It is primarily produced through the hydroprocessed esters and fatty acids (HEFA) pathway, which involves the hydrotreatment and upgrading feedstocks such as vegetable oils, animal fats, and waste oils. The HEFA process also serves as the principal method for producing sustainable aviation fuel (SAF), an essential solution for reducing carbon emissions in the aviation sector. SAF is a drop-in replacement for conventional jet fuel (Jet A-1), allowing seamless integration with existing aircraft engines.
While other production pathways for SAF and renewable diesel are emerging—such as gasification followed by Fischer-Tropsch (FT) synthesis, alcohol-to-jet processes, and power-to-liquids (e-fuels)—these technologies are anticipated to have limited commercial uptake through 2035. HEFA processes are expected to retain dominance due to their scalability, efficiency, and compatibility with the current refining infrastructure. Additionally, all processes generate valuable by-products, including lighter fractions such as propane, butane, and naphtha, which can be utilized across various industries, enhancing the economic viability of renewable diesel and SAF production.
The sustainable fuel market is expected to grow significantly, with global renewable diesel and SAF production capacity exceeding 57 million tonnes annually by 2035. This growth is driven by policy developments, reduced carbon emissions from vehicle fleet operators and airlines, and the emergence of new production technologies. ...Read more
Fantasy sports and esports have become two of the fastest-growing sectors in the global entertainment industry, attracting millions of fans worldwide. Driven by technological advancements and evolving consumer preferences, these once-niche activities have now emerged as significant cultural phenomena.
Fantasy sports, which involve assembling virtual teams of real athletes, have surged in popularity by offering personalized, interactive experiences. Combining strategy, skill, and chance, fantasy sports enable fans to engage with their favorite teams and players in a more immersive manner. This growth is driven by several factors: technological advancements have made it easier to create and manage fantasy leagues with real-time data and scoring; increased accessibility through smartphones has broadened participation; and the social aspect fosters competition and community among players.
Meanwhile, esports—professional video game competitions—have also experienced rapid growth. This expansion is fueled by the rising popularity of esports events, technological innovations in gaming and streaming, and the global appeal of tournaments that attract diverse participants. Despite their differences, fantasy sports and esports share common elements: both are technology-driven, highly competitive, and have a broad global reach.
Key trends and developments in the sports industry reveal a landscape characterized by significant mergers and acquisitions. Major sports leagues and media companies invest substantially in fantasy sports and esports, often through acquiring existing platforms or strategic partnerships. Concurrently, advanced analytics and machine learning have become increasingly prevalent, providing players with valuable insights and predictive capabilities. The growing popularity of mobile gaming has further accelerated the expansion of mobile fantasy sports applications and esports tournaments. Additionally, fantasy sports and esports are increasingly used to enhance fan engagement and loyalty within traditional sports leagues. In response to these developments, governments and sports governing bodies are actively working on establishing regulations to address critical issues related to gambling, integrity, and player welfare.
Further technological advancements are expected to propel both industries. Augmented and virtual reality could offer more immersive fan experiences, artificial intelligence could enhance player analytics and matchmaking, and blockchain technology may improve transaction transparency and security.
Fantasy sports and esports have profoundly influenced traditional sports by attracting new audiences and generating additional revenue streams. Nonetheless, there are growing concerns regarding their potential adverse effects on the culture and competitive integrity of traditional sports. Fantasy sports and esports have emerged as cultural phenomena, engaging millions of fans globally. Fueled by technological advancements and evolving consumer preferences, these industries are positioned for sustained growth and innovation in the coming years. ...Read more
The geospatial industry has transformed from a specialized area of cartography into a key component of the global digital economy. Geographic Information Systems (GIS) now serve as the spatial framework for managing global supply chains and local utility networks. Demand for these solutions continues to grow as organizations increasingly recognize the value of location-based insights for operational efficiency, environmental responsibility, and strategic planning.
The Integration of AI and ML (GeoAI)
A significant trend currently shaping the GIS market is the integration of AI and ML, commonly referred to as "GeoAI." This convergence has transformed GIS from a system primarily used for storing and viewing static data into a platform capable of proactive and predictive analysis.
Recent development solutions increasingly incorporate Large Language Models (LLMs) and generative AI to broaden access to spatial data. Through conversational GIS interfaces, users can query complex datasets in natural language, enabling non-technical stakeholders to generate maps or conduct spatial analyses without specialized coding expertise. This development is expanding the adoption of GIS tools in corporate environments, where spatial intelligence informs market expansion and risk assessment.
In addition to advancements in user interfaces, artificial intelligence is transforming automated feature extraction. Advanced computer vision algorithms have become integral to GIS development pipelines, facilitating rapid identification of buildings, roads, vegetation, and land-use changes from high-resolution satellite and aerial imagery. This automation is essential for maintaining the accuracy and timeliness of digital maps, as it supports continuous updates to global datasets in response to rapid urbanization and environmental changes. Moreover, predictive spatial modeling is increasingly utilized to forecast outcomes such as future traffic congestion, flood-inundation zones, and agricultural yields, thereby enhancing long-term resource management.
Cloud-Native Architectures and Real-Time Geospatial Streams
The transition from desktop-centric Geographic Information Systems (GIS) to cloud-native architectures is nearly complete, fundamentally transforming the storage, processing, and sharing of spatial data. Contemporary GIS development solutions utilize microservices and serverless frameworks, enabling platforms to scale efficiently in response to the substantial data volumes produced by modern sensors.
A significant development in this field is the emergence of cloud-native spatial data warehouses. These platforms enable organizations to execute complex spatial queries, such as join operations involving billions of points, directly within the cloud environment where the data is stored. This approach eliminates the need for extensive data transfers. The resulting architectural change supports the increasing demand for Data as a Service (DaaS), in which high-fidelity geospatial layers are delivered through application programming interfaces (APIs) to diverse end-user applications.
The integration of the Internet of Things (IoT) has introduced a temporal dimension to GIS, resulting in the emergence of real-time geospatial data streams. Contemporary development solutions are engineered to ingest live telemetry from millions of connected devices, such as autonomous vehicles, smart meters, and environmental sensors. This capability underpins the concept of "Digital Twins," which are virtual representations of physical assets or entire urban environments. Digital Twins offer a real-time reflection of reality, facilitating continuous monitoring of infrastructure health, energy consumption, and asset movement. By synchronizing spatial data with live sensor inputs, organizations can attain a level of situational awareness that static mapping cannot provide.
Immersive 3D Visualization and Advanced Mobile Connectivity
Traditional two-dimensional maps are increasingly being supplemented or replaced by high-fidelity three-dimensional visualization. The demand for enhanced precision in urban planning, underground utility management, and telecommunications is accelerating the development of 3D GIS. Advanced 3D engines, frequently adapted from the gaming industry, are now integrated into GIS platforms to deliver realistic renderings of terrain, building interiors, and atmospheric conditions.
3D environments are increasingly used for line-of-sight analysis and shadow modeling in dense urban corridors, enabling planners to assess the impact of new developments on existing skylines. In the utility sector, 3D GIS solutions facilitate mapping intricate subterranean networks, providing field crews with a comprehensive understanding of the spatial relationships among overlapping pipes and cables.
The effectiveness of high-fidelity models has been further enhanced by advancements in mobile connectivity, particularly the deployment of 5G networks. The 5G standard offers the high bandwidth and low latency necessary to stream large three-dimensional datasets and high-resolution imagery to mobile devices in the field. These capabilities have accelerated the adoption of Augmented Reality (AR) within GIS. Field technicians can now use AR-enabled mobile applications to superimpose digital spatial data onto their physical environment. For instance, a technician can use a tablet to visualize the precise location and depth of a buried water main through a digital overlay. The integration of 3D modeling, AR, and 5G connectivity is resulting in more intuitive and accurate workflows for field operations, thereby reducing errors and enhancing safety across various technical industries.
With rising global demand for location-based intelligence, the GIS industry is advancing toward autonomous GIS. AI, cloud computing, and immersive visualization are converging to create systems that map, understand, and predict real-time changes. Developers and stakeholders now focus on building comprehensive, intelligent spatial infrastructures to meet the complex needs of a connected world. ...Read more